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Epilepsy, the fourth most common family of neurological disorders in the United States1, are characterized by an imbalance of excitatory and inhibitory drive in the CNS that leads to recurrent seizures. Febrile seizures (FS) or fever associated seizures can occur in the general population, most often in children as early as 3 months up through 6 -7 years of age. However, in some individuals with genetic mutations, most often in a sodium channel gene, FS can persist beyond the age of 7 years into adulthood. This condition is referred to as febrile seizures plus or FS+. Rapid advances in genome sequencing has identified over 1,300 mutations in the human sodium ion channel gene SCN1A, making it a hotspot for epilepsy mutations. SCN1A mutations have been linked to a wide spectrum of seizure disorders, including febrile seizures (FS), genetic epilepsy with febrile seizures plus (GEFS+), and Dravet Syndrome (DS)2,3,4,5,6. About 20% of SCN1A missense mutations leads to GEFS+5,7,8. Pediatric history of complex or prolonged FS in childhood can subsequently develop into more debilitating forms of epilepsy such as temporal lobe epilepsy (TLE)9,10,11. Dravet Syndrome arises due to truncation mutations or loss of function mutations in SCN1A and is a severe form of intractable epilepsy, with childhood onset of febrile seizures that develop into refractory seizures, and is often associated with cognitive, developmental, and motor impairments2,5,12. Since many individuals with GEFS+ and/or DS exhibit febrile seizures, it becomes imperative to develop novel therapies to better combat these seizure disorders.
Animal models of SCN1A associated epilepsy have proven invaluable in characterizing different types of seizures (febrile vs generalized) and dissecting the neuronal mechanism of seizure generation13,14,15,16,17,18. While the study of spontaneous seizures via EEG/EMG recordings in rodent brains is well established and is a very useful tool, only a few studies have attempted to mimic febrile seizures in mouse models14,16,19,20,21,22,23. Previous studies have used a jet of heated dry air, or a methacrylate cylinder fitted with a thermal system, or heat lamps with a temperature controller in enclosed test arenas9,16,21,22,23,24 to induce seizures via hyperthermia. In order to increase body temperature in a more controlled environment, the protocol described here uses a custom-built chamber with a temperature-controlled heating system that allowed reproducible rates of increase in the body temperature of a mouse inside the chamber. The heat chamber was constructed from wood (length 40 cm x width 34 cm x height 31 cm) and was fitted with a digital temperature controller with a K thermocouple. A small axial fan equipped with a heater at the back panel of the chamber directs heated air into the chamber regulated by a digital temperature controller. This forced air heating system enables one to control the rate at which the chamber temperature increases. (Figure 1A,B). The K thermocouple located inside the wooden heat chamber sends feedback to the digital temperature controller, to maintain constant temperatures inside of the box during the assay. Setting the temperature on the digital temperature controller, enables the electric fan to send heated forced air through vents to uniformly heat the chamber (Figure 1A). The front panel of the heat chamber is a clear plexiglass sheet to enable easy video recording of the trials.
Adult (P30-P40) mice, heterozygous for a missense mutation in SCN1A that causes GEFS+ and an equal number of wild-type litter mates to serve as the control group, were selected for each experiment. Animals, both male and female, used in these studies weighed at least 15 g as wild-type mice weighing less were more sensitive to heat-induced seizures than heavier animals of the same age. In the pilot study, both mutant and wild-type mice were observed to seek out the cooler corners of the chamber at the back and remained there for prolonged periods of time. To circumvent this, effective floor size inside the heat chamber test arena was reduced to length 16.5 cm x width 21.5 cm x height 27.5 cm by placing a wooden block B (dimensions 20 cm x 8cm x 7.2 cm) at the right side of the chamber (Figure 1A). The heat chamber was constructed from 1.9 cm thick plywood (length 40 cm x width 34 cm x height 31 cm) covered with white laminate and fitted with a digital temperature controller with a K thermocouple. The laminate surface of the chamber walls is impermeable and can be easily sanitized between trials by wiping down with 70% ethanol. The temperature of the heat chamber was initially set at 50 °C and preheated for at least 1 h before the start of the experiment, to ensure uniform heating inside the chamber. Each mouse was fitted with a rectal thermometer for continuous monitoring of body temperature throughout the experiment. A single mouse was placed in the chamber at a time and the temperature was kept at 50 °C between 1st-10th minute. The temperature was then raised to 55 °C for 11th-20th minute, and finally raised to 60 °C for 21st-30th minute. This resulted in a reproducible rate of increase in the mouse body temperature (Figure 2A). Each trial was video-taped and behavioral analysis was conducted offline.
The heating protocol can be easily modified to change the initial temperature of the heat chamber and the rate that the chamber is heated, which in turn changes how quickly the body temperature of the mouse is elevated during the assay. Thus, this method provides more flexibility over traditional methods in setting up the behavioral screens involving heat-induced seizures. The heat-induced seizure protocol can also be used to screen for anti-epileptic drugs that make mutant mice more resistant to heat-induced seizures or increase the threshold temperature at which seizures are observed. Similarly, beneficial effects of restrictive diet regimes such as keto diet on heat-induced seizures can be examined in normal chow-fed vs keto-fed mice.

Figure 1: Description of the custom-built mouse heat chamber. (A) The front panel of the wooden mouse heat chamber shows the side control panel containing Power ON/OFF switch that turns on digital temperature controller, K thermocouple, fan heater's ON/OFF switch and heat indicator. The outer dimensions of the box and the inner test arena are shown in cm. A wooden block B used to effectively reduce test arena surface is also shown. The bottom of the test arena is covered with cob bedding to prevent mice from directly coming in contact with heated wooden surfaces. (B) The back panel of the heat chamber shows the fan mounted on the top air vent and the power cord to supply electricity to the chamber. This figure is modified from Figure 3 in Das et al., 2021, eNeuro14. Please click here to view a larger version of this figure.